Search PubMedSearch

Biomedical subjects

D F Barker

Publications and source records attributed to D F Barker.

At least 19 recordsLinked to original sources

The BRCA1 and 1A1.3B promoters are parallel elements of a genomic duplication at 17q21.

The results of experiments aimed at detecting polymorphisms and mutations in the BRCA1 promoter region as well as comparisons of two published DNA sequences indicated that two similar but distinct copies of this region exist in the human genome. PCR primers specific for amplification of each of the related sequences were developed and new genomic clones corresponding to each of the two promoter regions were isolated from rearrangement-resistant libraries. Sequence analysis of the clones and specific PCR products reveals two similar genomic arrangements of head-to-head genes. The BRCA1 gene is closely apposed to a gene structure that is similar but not identical to 1A1.3B, and the 1A1.3B gene is apposed to a gene structure that has strong similarity to BRCA1 but also significant differences. STS analysis of YAC and P1 clones located in the vicinity of BRCA1 indicates that these similar promoter regions are elements of a direct duplication. New hypotheses for genetic mechanisms that may be involved in breast and ovarian cancer etiology are raised by the identification of this duplicated genetic structure on chromosome 17q.

BRCA1 Protein

BRCA1 R841W: a strong candidate for a common mutation with moderate phenotype.

BRCA1 mutations cause increased risk for breast and ovarian cancer, frequently of early onset. Many different mutations occur in BRCA1, including several examples of recurrent mutations, each of which accounts for a significant number of families with heritable cancer predisposition. These common mutations have an etiological role in many breast and ovarian cancer cases and provide the opportunity to examine genotype-phenotype correlations and genotype-environment interactions in individuals with the identical BRCA1 lesion. We report a novel missense change in BRCA1, 2640 C-->T (R841W), found in 3 cases from a subject group of 305 breast and 79 ovarian cancer cases from Orange County, CA. These are consecutive, population-based cases not selected for age or family history. In all three cases, there is a strong family history of breast, ovarian, or other cancers possibly related to a BRCA1 defect and family members showed a high concordance of cancer incidence with the presence of R841W. The age of cancer onset was not always distinct from typical sporadic cases. Testing of a sample of 413 unrelated individuals to examine the hypothesis that R841W might be a rare polymorphism detected one additional instance in a woman with breast cancer diagnosed at age 77 years, and cancer in one parent. R841W is likely to be an etiologically significant lesion with involvement in close to 1% (95% confidence interval of 0-1.7%) of all breast and ovarian cancers in this population.

Adult

Refined genetic mapping and proteolipid protein mutation analysis in X-linked pure hereditary spastic paraplegia.

X-linked hereditary spastic paraplegias (HSP) present with two distinct phenotypes, pure and complicated. The pure form is characterized by spasticity and gait difficulties but lacks the additional features (nystagmus, dysarthria, mental retardation) present in the complicated form. The complicated form is heterogeneous, caused by mutations of the L1CAM gene at Xq28 (SPG1) or the PLP gene at Xq22 (SPG2) that is allelic to Pelizaeus-Merzbacher disease (PMD). Since in one kindred (K313) the pure form of HSP was also mapped to Xq22, this raises the issue as to whether a pure form of HSP exists that is allelic to X-linked complicated HSP (SPG2) and PMD. To answer this question, we carried out linkage analysis in a new pedigree with pure HSP (K101) and refined linkage in pedigree K313. The PLP gene was also screened for mutation by direct sequencing and reverse-transcriptase polymerase chain reaction (RT-PCR). In both families, the disease locus mapped to Xq22 with Lod scores at zero recombination of 5.3 for COL4A5 2B6 in K313 and 2.4 for DXS101 in K101. A T to C transition in exon 5 of the PLP gene was identified from affected individuals of K313. This transition causes a Ser to Pro mutation in the major extracellular loop of PLP/DM20. This finding demonstrates that a form of X-linked pure spastic paraplegia, X-linked complicated HSP (SPG2) and PMD are allelic disorders. There was no evidence of mutations in either coding sequences or the intron/exon junctions of PLP in pedigree K101, suggesting that the disease-producing mutation may be in the noncoding portions of PLP or in a nearby gene.

Adult

A mutation causing Alport syndrome with tardive hearing loss is common in the western United States.

Mutations in the COL4A5 gene, located at Xq22, cause Alport syndrome (AS), a nephritis characterized by progressive deterioration of the glomerular basement membrane and usually associated with progressive hearing loss. We have identified a novel mutation, L1649R, present in 9 of 121 independently ascertained families. Affected males shared the same haplotype of eight polymorphic markers tightly linked to COL4A5, indicating common ancestry. Genealogical studies place the birth of this ancestor >200 years ago. The L1649R mutation is a relatively common cause of Alport syndrome in the western United States, in part because of the rapid growth and migratory expansion of mid-nineteenth-century pioneer populations carrying the gene. L1649R affects a highly conserved residue in the NC1 domain, which is involved in key inter- and intramolecular interactions, but results in a relatively mild disease phenotype. Renal failure in an L1649R male typically occurs in the 4th or 5th decade and precedes the onset of significant hearing loss by approximately 10 years.

Adolescent

A 2D crossover-based map of the human X chromosome as a model for map integration.

We have constructed a two-dimensional map of 243 markers on the X chromosome. The average distance between markers ordered by two recombinants is 5.4 centiMorgans (cM), which is reduced to 3.2 cM using a less stringent criterion of one recombinant. Map resolution is enhanced by replacing the usual reference marker format with a 2D format, and the two-recombinant rule is more conservative than the lod 3.0 criterion for order. Taken together, crossover mapping and the 2D format produces maps with greater reliability and higher resolution than maps constructed using currently accepted standards. This first high-density crossover-based map of an entire human chromosome provides a model for integrating physical and genetic maps.

Chromosome Mapping

Hearing loss.

Explore the source record for details and available documents.

Genetic Counseling

Fine structure mapping of the human X-linked hypophosphatemic rickets gene locus.

X-linked hypophosphatemic rickets (HYP) is an X-linked dominant disorder characterized by decreased renal tubular phosphate reabsorption and consequent hypophosphatemia. Renal cross-transplantation studies in Hyp mice indicate that the disorder is secondary to the elaboration of an as yet unidentified humoral factor. A full understanding of the pathophysiology of the disease and the nature of this factor will be facilitated by identification of the HYP gene. Efforts to isolate the HYP gene have been deterred by limited precision in the map of the Xp22.1 region and the consequent distance between DXS365 and DXS274, the previously discovered flanking markers for the HYP gene. To map the HYP region precisely, HYP family resources from two groups of investigators were combined, and several newly available microsatellite repeat probes were tested for linkage to HYP. Our data indicate that DXS365, DXS3424, DXS443, DXS1052, DXS274, and DXS1683 are tightly linked to the HYP gene and suggest a locus order of: Xtel-DXS315-(GLR/DXS43)-DXS257-(DXS443+ ++-DXS3424)-DXS365-HYP-DXS1683-DXS1052-DXS 274-(DXS41/DXS92)-DXS451-Xcen. The HYP gene is located in the 350- to 650-kilobase region between DXS365 and DXS1683. These results will provide a basis for the isolation of candidate genes from the region.

Base Sequence

Refined genetic mapping of X-linked Charcot-Marie-Tooth neuropathy.

Genetic linkage studies were conducted in four multigenerational families with X-linked Charcot-Marie-Tooth disease (CMTX), using 12 highly polymorphic short-tandem-repeat markers for the pericentromeric region of the X chromosome. Pairwise linkage analysis with individual markers confirmed tight linkage of CMTX to the pericentromeric region in each family. Multipoint analyses strongly support the order DXS337-CMTX-DXS441-(DXS56,PGK1).

Adult

Flanking markers define the X-linked hypophosphatemic rickets gene locus.

X-linked hypophosphatemic rickets (HYP) is an X-linked dominant disorder characterized by decreased renal tubular phosphate reabsorption and consequent hypophosphatemia. The defect in tubular phosphate reabsorption is probably secondary to an unidentified humoral factor. Identification of the humoral factor and a full understanding of the pathophysiology of the disease await the identification of the HYP gene. Previously we demonstrated that DXS257 and DXS41 are flanking markers for the HYP gene. Two markers, DXS365 and DXS274, are tightly linked to the HYP gene, but investigators have been unable to determine whether they are centromeric or telomeric to the disease gene. Since tightly linked flanking markers are necessary prerequisites to obtain the gene by positional cloning techniques, we sought to determine the relative positions of these markers to the HYP gene by expanding our data base for linkage studies. We also investigated a new polymorphic probe for linkage to HYP to construct a more detailed genetic map around the HYP locus. Our data indicate that the markers DXS365, DXS274, and DXS92 are tightly linked to the HYP locus and suggest a locus order of Xtel-(DXS444/DXS315)-DXS43-(DXS257/DXS3 65)-HYP-(DXS274/DXS41/DXS92)-DXS-451- DXS319-Xeen. These results will facilitate attempts further to localize and clone the HYP gene.

Chromosome Mapping

Linkage analysis and physical mapping near the gene for X-linked agammaglobulinemia at Xq22.

The gene for X-linked agammaglobulinemia (XLA) has been mapped to Xq22. No recombinations have been reported between the gene and the probe p212 at DXS178; however, this probe is informative in only 30-40% of women and the reported flanking markers, DXS3 and DXS94, are 10-15 cM apart. To identify additional probes that might be useful in genetic counseling, we examined 11 polymorphisms that have been mapped to the Xq21.3-q22 region in 13 families with XLA. In addition, pulsed-field gel electrophoresis and yeast artificial chromosomes (YACs) were used to further characterize the segment of DNA within which the gene for XLA must lie. The results demonstrated that DXS366 and DXS442, which share a 430-kb pulsed-field fragment, could replace DXS3 as proximal flanking markers. Probes at DXS178 and DXS265 identified the same 145-kb pulsed-field fragment, and both loci were contained within a 200-kb YAC identified with the probe p212. A highly polymorphic CA repeat (DXS178CA) was isolated from one end of this YAC and used in linkage analysis. Probes at DXS101 and DXS328 shared several pulsed-field fragments, the smallest of which was 250 kb. No recombinations were seen between XLA and the DXS178-DXS265-DXS178CA complex, DXS101, DXS328, DXS87, or the gene for proteolipid protein (PLP). Key crossovers, when combined with the linkage data from families with Alport syndrome, suggested the following order of loci: cen-DXS3-DXS366-DXS442-(PLP, DXS101, DXS328, DXS178-DXS265-DXS178CA complex, XLA)-(DXS87, DXS94)-DXS327-(DXS350, DXS362)-tel.(ABSTRACT TRUNCATED AT 250 WORDS)

Agammaglobulinemia

Definition and mapping of STSs at STR and RFLP loci in Xp11-Xq22.

New primer pair sequences specific for 25 loci in the Xp11-q22.1 region are described. Eighteen of the pairs span segments containing significant CA dinucleotide repeats, with 9 of these revealing polymorphisms of greater than 50% heterozygosity. Four of the CA-containing segments occur in probes previously reported to detect RFLPs, while the remaining 14 are from newly isolated clones. STSs were also developed for 7 other RFLP-only loci. All of these 25 STSs plus 11 other published STR markers have been fine-mapped with respect to chromosomal breakpoints, defining 15 subintervals in Xp11-Xq22. This map of 36 STSs, nearly all of which are associated with markers that are genetically mapped and/or highly polymorphic, will significantly aid efforts to construct a complete physical map of this region and to correlate it with the high-density genetic map.

Base Sequence

Mutations in the codon for a conserved arginine-1563 in the COL4A5 collagen gene in Alport syndrome.

We have screened 110 unrelated Alport syndrome kindreds for mutations in the exon 48 region of the COL4A5 collagen gene. Denaturing gradient gel electrophoresis (DGGE) of the PCR-amplified region of exon 48 revealed sequence variants in DNA from affected males and carriers of three unrelated kindreds. All three kindreds have classical Alport syndrome of the juvenile type. DNA-sequencing analyses demonstrated two different single base changes in the codon for arginine-1563 located in exon 48. In Utah kindred 2103, there was a substitution of C by T resulting in the change of the CGA codon for arginine to the translation stop codon TGA. In Utah kindred 2123 and in the Danish kindred A13, there was a C-->T mutation in the noncoding strand changing the same codon to CAA for glutamine. Both mutations were confirmed by allele-specific hybridization on PCR-amplified DNA from other family members.

Adult

Charcot-Marie-Tooth neuropathy type 1A with both duplication and non-duplication.

We studied a family with nine of twenty members affected with Charcot-Marie-Tooth disease type 1A (CMT1A). The proband and her four affected sibs showed no duplication of the 17p11.2-p12 (CMT region). Two of the proband's affected daughters and three affected grandchildren showed duplication of the PMP-22 gene and of the marker VAW409R3 but not of the markers VAW412R3 and EW401. Pulsed field gel electrophoresis (PFGE) revealed a 220 kb SacII fragment in one CMT1A patient with duplication instead of a 500 kb SacII fragment as previously reported (1, 3, 4, 6-9). Our findings suggest a smaller size of the duplication in this CMT1A family. The disease segregates with the same haplotype in both duplicated and nonduplicated CMT1A patients. The clinical phenotype showed more severe weakness with earlier onset and motor nerve conduction velocities were characterized by more significant slowing in the patients with duplication than in the patients who did not show duplication.

Adult